Refine
Has Fulltext
- yes (23)
Is part of the Bibliography
- yes (23) (remove)
Year of publication
Document Type
- Doctoral Thesis (23)
Keywords
- Photoelektronenspektroskopie (23) (remove)
Institute
- Physikalisches Institut (23) (remove)
In der vorliegenden Arbeit wurden Untersuchungen an Dünnschichtsolarzellen auf der Basis von Cu(In,Ga)(S,Se)2, der heute vielversprechendsten Dünnschichttechnologie, durchgeführt. Für eine weitere Optimierung der Zellen ist ein detailliertes Verständnis ihrer chemischen, elektronischen und strukturellen Eigenschaften notwendig. Insbesondere die in dieser Arbeit untersuchten Eigenschaften an den Grenzflächen der Zelle sind aufgrund ihrer zentralen Rolle für den Ladungsträgertransport von besonderem Interesse. Bei den vorliegenden Untersuchungen kamen verschiedene Spektroskopien zum Einsatz. Mit einer Kombination von Photoelektronenspektroskopie und Inverser Photoelektronenspektroskopie war es möglich, sowohl eine direkte Bestimmung der Valenz- und Leitungsbandanpassungen an den untersuchten Grenzflächen durchzuführen als auch Oberflächenbandlücken zu bestimmen. Die Messungen wurden durch die volumenempfindliche Röntgenemissionsspektroskopie ideal ergänzt, die - wie diese Arbeit zeigt - zusammen mit der Photoelektronenspektroskopie besonders nützlich bei der Analyse des Durchmischungsverhaltens an Grenzflächen oder auch des Einflusses chemischer Behandlungen auf die chemischen und elektronischen Eigenschaften von Oberflächen ist. Im ersten Teil der Arbeit wurden vier Grenzflächen in Proben auf der Basis des Cu(In,Ga)(S,Se)2-Absorbers von Shell Solar (München) untersucht. Es konnte dabei zunächst das Durchmischungsverhalten an der CdS/CuIn(S,Se)2-Grenzfläche in Abhängigkeit des S-Gehaltes an der Absorberoberfläche untersucht werden. Bei Messungen an der i-ZnO/CdS-Grenzfläche wurde ein flacher Leitungsbandverlauf gefunden, zudem konnte eine Durchmischung an dieser Grenzfläche ausgeschlossen werden. Eine besondere Herausforderung stellten die Messungen an der Grenzfläche des Absorbers zum Molybdänrückkontakt dar, da diese Grenzfläche nach ihrem Entstehen unweigerlich unter der etwa 1-2 um dicken Absorberschicht begraben liegt. Durch geeignetes Abspalten des Absorbers vom Rückkontakt gelang es, diese Grenzfläche freizulegen und zu spektroskopieren. Die Untersuchungen zur Vorbehandlung des Shell-Absorbers mit einer ammoniakalischen Cd-Lösung dienten dem Verständnis der positiven Einflüsse dieser Behandlung auf den Zellwirkungsgrad. Dabei wurde neben verschiedenen Reinigungswirkungen auf den Absorber als wichtigster Befund die Bildung einer sehr dünnen CdS-Schicht und, für hohe Cd-Konzentrationen, einer zusätzlichen Cd(OH)2-Schicht auf der Absorberoberfläche nachgewiesen. Die gewonnenen Erkenntnisse über die Cd-Behandlung haben eine besondere Bedeutung für die Untersuchung der Grenzfläche des Absorbers und einer mit ILGAR ("Ion Layer Gas Reaction") hergestellten Zn(O,OH)-Pufferschicht. An dieser Grenzfläche wurde die Bandanpassung mit und ohne vorherige Cd-Behandlung des Absorbers vermessen. Wird die Bandanpassung ohne Vorbehandlung noch durch Adsorbate auf dem Absorber dominiert, wobei man ein "Cliff" im Leitungsband findet, so ist der Leitungsbandverlauf für die Grenzfläche mit Cd-behandeltem Absorber flach, was im Einklang mit den sehr guten Wirkungsgraden steht, die mit solchen Zellen erreicht werden. Im zweiten Teil der Arbeit wurden Messungen an Dünnschichtsolarzellen mit selenfreiem Cu(In,Ga)S2 Absorber diskutiert. Ein Problem des Cu(In,Ga)S2-Systems besteht heute noch darin, daß die offene Klemmenspannung geringer ausfällt, als dies aufgrund der im Vergleich zu CuInSe2 größeren Bandlücke zu erwarten wäre. Modelle, die dies auf eine ungünstige Bandanpassung an der CdS/Cu(In,Ga)S2-Grenzfläche zurückführen, konnten in dieser Arbeit durch die Messung der Leitungsbandanpassung, die ein deutlich "Cliff"-artiges Verhalte aufweist, bestätigt werden. Untersuchungen des Einflusses unterschiedlicher Oberflächenzusammensetzungen auf die chemischen und elektronischen Eigenschaften der Cu(In,Ga)Se2-Absorberoberfläche ergaben, wie sich die Bandlücke des Absorbers mit wachsender Kupferverarmung vergrößert und gleichzeitig die Bandverbiegung zunimmt. Im letzten, rein grundlagenorientierten Teil dieser Arbeit wurden Röntgenabsorptions- und resonante Röntgenemissionsmessungen an CdS und ZnS im Vergleich zu von A. Fleszar berechneten theoretischen Spektren, die unter Berücksichtigung der Übergangsmatrixelemente aus einer LDA-Bandstruktur berechnet wurden, diskutiert. Es konnten dabei sowohl Anregungen in exzitonische Zustände als auch kohärente Emission mit Informationen über die Bandstruktur gefunden werden. Auch war es möglich, die Lebensdauern verschiedener Valenzlochzustände zu bestimmen. Es zeigt sich, daß so die Bestimmung einer unteren Grenze für die Bandlücke möglich ist, für eine genaue Bestimmung bei den untersuchten Verbindungen jedoch ein Vergleich mit theoretischen Berechnungen notwendig ist.
A plethora of novel material concepts are currently being investigated in the condensed matter research community. Some of them hold promise to shape our everyday world in a way that silicon-based semiconductor materials and the related development of semiconductor devices have done in the past. In this regard, the last decades have witnessed an explosion of studies concerned with so called ‘’quantum materials’’ with emerging novel functionalities. These could eventually lead to new generations of electronic and/or spintronic devices. One particular material class, the so called topological materials, play a central role. As far as their technological applicability is concerned, however, they are still facing outstanding challenges to date.
Predicted for the first time in 2005 and experimentally verified in 2007, two-dimensional topological insulators (2D TIs) (a.k.a. quantum spin Hall insulators) exhibit the outstanding property of hosting spin-polarized metallic states along the boundaries of the insulating 2D bulk material, which are protected from elastic single-particle backscattering and give rise to the quantum spin Hall effect (QSHE). Owing to these peculiar properties the QSHE holds promise for dissipationless charge and/or spin transport. However, also in today’s best 2D TIs the observation of the QSHE is still limited to cryogenic temperatures of maximum 100 K. Here, the discovery of bismuthene on SiC(0001) has marked a milestone towards a possible realization of the QSHE at or beyond room-temperature owing to the massively increased electronic bulk energy gap on the order of 1 eV. This thesis is devoted to and motivated by the goal of advancing its synthesis and to build a deeper understanding of its one-particle and two-particle electronic properties that goes beyond prior work.
Regarding the aspect of material synthesis, an improved growth procedure for bismuthene is elaborated that increases the domain size of the material considerably (by a factor of ≈ 3.2 - 6.5 compared to prior work). The improved film quality is an important step towards any future device application of bismuthene, but also facilitates all further basic studies of this material.
Moreover, the deposition of magnetic transition metals (Mn and Co) on bismuthene is investigated. Thereby, the formation of ordered magnetic Bi-Mn/Co alloys is realized, their structure is resolved with scanning tunneling microscopy (STM), and their pristine electronic properties are resolved with scanning tunneling spectroscopy (STS) and photoemission spectroscopy (PES). It is proposed that these ordered magnetic Bi-Mn/Co-alloys offer the potential to study the interplay between magnetism and topology in bismuthene in the future.
In this thesis, a wide variety of spectroscopic techniques are employed that aim to build an understanding of the single-particle, as well as two-particle level of description of bismuthene's electronic structure. The techniques involve STS and angle-resolved PES (ARPES) on the one hand, but also optical spectroscopy and time-resolved ARPES (trARPES), on the other hand. Moreover, these experiments are accompanied by advanced numerical modelling in form of GW and Bethe-Salpeter equation calculations provided by our theoretical colleagues. Notably, by merging many experimental and theoretical techniques, this work sets a benchmark for electronic structure investigations of 2D materials in general.
Based on the STS studies, electronic quasi-particle interferences in quasi-1D line defects in bismuthene that are reminiscent of Fabry-Pérot states are discovered. It is shown that they point to a hybridization of two pairs of helical boundary modes across the line defect, which is accompanied by a (partial) lifting of their topological protection against elastic single-particle backscattering.
Optical spectroscopy is used to reveal bismuthene's two-particle elecronic structure. Despite its monolayer thickness, a strong optical (two-particle) response due to enhanced electron-hole Coulomb interactions is observed. The presented combined experimental and theoretical approach (including GW and Bethe-Salpeter equation calculations) allows to conclude that two prominent optical transitions can be associated with excitonic transitions derived from the Rashba-split valence bands of bismuthene. On a broader scope this discovery might promote further experiments to elucidate links of excitonic and topological physics.
Finally, the excited conduction band states of bismuthene are mapped in energy and momentum space employing trARPES on bismuthene for the first time. The direct and indirect band gaps are succesfully extracted and the effect of excited charge carrier induced gap-renormalization is observed. In addition, an exceptionally fast excited charge carrier relaxation is identified which is explained by the presence of a quasi-metallic density of states from coupled topological boundary states of domain boundaries.
The present thesis deals with surface treatment, material improvement, and the electronic structure of the diluted magnetic semiconductor (Ga,Mn)As. The two key issues are the preparation of clean surfaces and the observation of potential valence hybridizations in (Ga,Mn)As by means of photoemission spectroscopy. Several cleaning methods are applied individually to (Ga,Mn)As and their e ects are compared in detail by various methods. Based on the results of each method, a sophisticated recipe has been elaborated, which provides clean, stoichiometric, and reconstructed surfaces, even if the sample was exposed to air prior to preparation. Moreover, the recipe works equally well for intentionally oxidized surfaces. The individual advantages of ex-situ wet- chemical etching and in situ ion-milling and tempering can be combined in an unique way. In regard to the post-growth annealing in order to optimize the electronic and magnetic properties of (Ga,Mn)As, the effect of surface segregation of interstitial Mn was quantifed. It turns out that the Mn concentration at the surface increases by a factor 4.3 after annealing at 190 C for 150 h. The removal of the segregated and oxidized species by wet-chemical etching allows a tentative estimate of the content of interstitial Mn. 19-23% of the overall Mn content in as-grown samples resides on interstitial positions. The complementary results of core level photoemission spectroscopy and resonant photoemission spectroscopy give hints to the fact that a sizeable valence hybridization of Mn is present in (Ga,Mn)As. This outlines that the simple Mn 3d5-con guration is too naive to refect the true electronic structure of substitutional Mn in (Ga,Mn)As. Great similarities in the core level spectra are found to MnAs. The bonding is thus dominantly of covalent, not ionic, character. Transport measurements, in particular for very low temperatures (<10 K), are in agreement with previous results. This shows that at low temperature, the conduction is mainly governed by variable-range hopping which is in line with the presence of an impurity band formed by substitutional Mn. In the light of the presented results, it is therefore concluded that a double-exchange interaction is the dominant mechanism leading to ferromagnetic coupling in (Ga,Mn)As. The valence hybridization and the presents of an impurity band, both of which are inherent properties of substitutional Mn, are indications for a double-exchange scenario, being at variance to a RKKY-based explanation. Contributions from a RKKY-like mechanism cannot definitely be excluded, however, they are not dominant.
The rich phase diagram of transition metal oxides essentially roots in the many body physics arising from strong Coulomb interactions within the underlying electron system.
Understanding such electronic correlation effects remains challenging for modern solid state physics, therefore experimental data is required for further progress in the field. For this reason, spectroscopic investigations of prototypical correlated materials are the scope of this thesis. The experimental methods focus on photoelectron spectroscopy, and the test materials are the correlated metal SrVO\(_3\) and the Mott insulator LaTiO\(_3\), both of which are fabricated as high quality thin films.
In SrVO\(_3\) thin films, a reduction of the film thickness induces a dimensional crossover from the metallic into the Mott insulating phase. In this thesis, an extrinsic chemical contribution from a surface over-oxidation is revealed that emerges additionally to the intrinsic change of the effective bandwidth usually identified to drive the transition. The two contributions are successfully disentangled by applying a capping layer that prevents the oxidation, allowing for a clean view on the dimensional crossover in fully stoichiometric samples. Indeed, these stoichiometric layers exhibit a higher critical thickness for the onset of the metallic phase than the bare and therefore over-oxidized thin films.
For LaTiO\(_3\) thin films, the tendency to over-oxidize is even stronger. An uncontrolled oxygen diffusion from the substrate into the film is found to corrupt the electronic properties of LaTiO\(_3\) layers grown on SrTiO\(_3\). The Mott insulating phase is only detected in stoichiometric films fabricated on more suitable DyScO\(_3\) substrates. In turn, it is demonstrated that a \(controlled\) incorporation of excess oxygen ions by increasing the oxygen growth pressure is an effective way of \(p\) doping the material which is used to drive the band filling induced Mott transition.
Gaining control of the oxygen stoichiometry in both materials allows for a systematic investigation of correlation effects in general and of the Mott transition in particular. The investigations are realized by various photoelectron spectroscopy techniques that provide a deep insight into the electronic structure. Resonant photoemission not only gives access to the titanium and vanadium related partial density of states of the valence band features, but also shows how the corresponding signal is enhanced by tuning the photon energy to the \(L\) absorption threshold. The enhanced intensity turns out to be very helpful for probing the Fermi surface topology and band dispersions by means of angular-resolved photoemission. The resulting momentum resolved electronic structure verifies central points of the theoretical description of the Mott transition, viz. the renormalization of the band width and a constant Luttinger volume in a correlated metal as the Mott phase is approached.
This thesis consists of two parts of original experimental work, its evaluation, and in- terpretation. Its final goal is to investigate dynamical charge transfer (CT) at a hetero- molecular interface with resonant photoelectron spectroscopy (RPES). In order to achieve this goal preliminary studies have been necessary. First two hetero-molecular inter- faces that exhibit adequate structural properties as well as an appropriate photoelec- tron spectroscopy (PES) spectrum of the valence regime have been identified. The de- sired CT analysis with RPES of these hetero-molecular systems is then conducted on the basis of the knowledge gained by previous RPES studies of homo-molecular sys- tems.
The characterization of hetero-molecular films on single crystal Ag surfaces in the first part of this thesis is performed with high resolution core level PES and valence PES. The reproduction of the core level PES data with reference spectra of homo-molecular films allows me to determine which molecule is in direct contact to the Ag surface and which one is situated in higher layers (not the first one). Due to the direct correspon- dence of core level and valence PES the assignment of features in the spectra of the latter technique can be achieved with the identification of the contributions extracted from the evaluation of the data of the former technique. It is found that the systems PTCDA on one monolayer (ML) of SnPc on Ag(111) and CuPc/1 ML PTCDA/Ag(111) are stable at 300 K which means that no significant layer exchange occurs for these systems. In contrast a vertical exchange of CuPc and PTCDA molecules is observed for PTCDA de- posited on top of 1 ML CuPc/Ag(111). Up to a coverage of approximately 0.5 ML of PTCDA molecules these diffuse into the first layer, replace CuPc molecules, and con- sequently force them into higher layers. Above a coverage of approximately 0.5 ML of PTCDA molecules these are also found in higher layers. The search for a promising system for the intended RPES study then leads to an investigation of hetero-molecular films with a combination of F4TCNQ and PTCDA molecules on Ag(110) within the same approach. Depositing F4TCNQ molecules onto a 1 ML PTCDA/Ag(110) film in the herringbone phase at 300 K results in an instable hetero-organic system which un- dergoes a layer exchange. Hereby PTCDA molecules in the first layer are replaced by F4TCNQ molecules similar to the behavior of the system PTCDA/1 ML CuPc/Ag(111). Switching the order of the preparation steps leads to a stable film of PTCDA/1.0 ML F4TCNQ/Ag(110) at 300 K. Among the stable hetero-molecular films only the system CuPc/1 ML PTCDA/Ag(111) exhibits the required wetting growth of the first two layers at 300 K and a valence PES spectrum with energetically separable molecular orbital signals in the same intensity range. Thus this system is identified to be appropriate for a detailed analysis with RPES.
The unexpected findings of vertical exchanges in the hetero-molecular films at 300 K motivate a study of the behavior at elevated temperatures for all systems investigated before. Therein it is revealed that annealing 1.5 ML SnPc/1 ML PTCDA/Ag(111) and
1.0 ML PTCDA/1 ML SnPc/Ag(111) to a temperature above the desorption temperature of molecules not in direct contact to the Ag(111) surface results in a 1 ML SnPc/Ag(111) film in both cases. Hence at elevated temperatures (approximately above 420 K) SnPc molecules replace PTCDA molecules in the first layer on Ag(111). At higher temper- atures (approximately above 470 K) PTCDA molecules and SnPc molecules situated above the first layer then desorb from the 1 ML SnPc/Ag(111) sample. Annealing all hetero-molecular films with CuPc and PTCDA molecules on Ag(111) to 570 K leads to a sample with CuPc and PTCDA molecules in the first and only layer. Depending on the initial CuPc coverage different ratios of both molecules are obtained. With a CuPc coverage of exactly 1 ML, or above, films with PTCDA coverages of approxi- mately 0.1–0.2 ML are produced. So at elevated temperatures CuPc molecules replace PTCDA molecules in the first layer of the system CuPc/1 ML PTCDA/Ag(111). Anal- ogously the layer exchange at 300 K for the system PTCDA/1 ML CuPc/Ag(111) is reversed at elevated temperatures. In the case of SnPc and CuPc coverages below 1 ML annealing vertical hetero-molecular systems with PTCDA on Ag(111) up to 570 K re- sults in a single layer of mixed hetero-molecular films with lateral long range order. In this way the system CuPc + PTCDA/Ag(111) is prepared and then characterized as a proper system for a detailed analysis with RPES. Additional annealing experiments of hetero-organic films consisting of F4TCNQ and PTCDA molecules on Ag(110) with an F4TCNQ coverage of 1.0 ML (and above) end in a submonolayer (sub-ML) film of F4TCNQ/Ag(110) that exhibits a contribution of amorphous carbon. Consequently, it can be concluded that at elevated temperatures part of the F4TCNQ molecules decom- pose.
In the second part of this thesis homo-molecular multilayer samples and (sub-)ML films on single crystalline metal surfaces are investigated with RPES in order to enable the final RPES study of vertical and lateral hetero-molecular interface systems. First a pho- ton energy (hν) dependent intensity variation of (groups of) molecular orbital signals of exemplary multilayer films (NTCDA and coronene) is studied and explained on the basis of the local character of the electronic transitions in near edge x-ray absorption fine structure (NEXAFS) spectroscopy in combination with the real space probability den- sity of the contributing molecular orbitals. This simple approach is found to be able to correctly describe relative intensity variations by orders of magnitude while it fails for hν dependent relative intensity changes in the same order of magnitude. After that the hν dependent line-shape evolution of an energetically separated molecular orbital signal of a CuPc multilayer is discussed in relation to small molecules in the gas phase and explained with an effect of electron vibration coupling. Through a comparison of the hν dependent line-shape evolution of the highest occupied molecular orbital (HOMO) of a CuPc with a SnPc multilayer the molecule specific character of this effect is identified. Then the same effect with either two (or more) electronic transitions or multiple coupling vibrational modes is observed for a coronene multilayer. Thereafter the influence of the adsorption on metal surfaces on this effect is studied and discussed with special emphasis on a possible contribution by features which are related to dynamical interface CT. For a sub-ML of SnPc/Au(111) no variation with respect to a SnPc multilayer film is detected while for a sub-ML of CuPc/Au(111) less intensity is distributed into the high binding energy (EB) part of the HOMO signal with respect to the corresponding multilayer film. In the RPES data of a sub-ML of coronene/Ag(111) a resonance specific variation of the hν dependent line-shape evolution of the HOMO signal is found by the revelation of a change of this effect with respect to the coronene multilayer data in only one of the two NEXAFS resonances. All these findings are consistently explained within one effect and a common set of parameters, namely all quantities that characterize the potential energy surfaces involved in the RPES process. Through that an alternative explanation that re- lies on dynamical CT can be excluded which influences the following CT analysis with RPES.
Three criteria for such an analysis of dynamical interface CT with RPES are identified. In the system coronene on Ag(111) a low EB feature is related to metal-molecule inter- face CT through the assignment of a particular final state and hence named CT state. In the EB region of the frontier molecular orbital signals of the molecule-metal inter- face systems with a signal from the lowest unoccupied molecular orbital (LUMO) in direct valence PES a broad line-shape is measured in RPES. This finding is related to interface CT by a possible explanation that emerges through the comparison to the line- shape of the CT state. The constant kinetic energy (EK ) features detected for several molecule-metal interfaces constitute the third criterion for a CT analysis with RPES. For the molecule-metal interface systems without a LUMO signal in direct valence PES the energy of these features can be calculated with the assignment of the responsible decay channel in combination with explicitly given simplifying assumptions. Through that the involvement of metal-molecule interface CT in the generation of these constant EK fea- tures is demonstrated. The RPES data of the lateral and the vertical hetero-molecular interface, identified in the first part, is then scanned for these three CT criteria. Thereby neither for the lateral hetero-molecular system CuPc + PTCDA/Ag(111) nor for the verti- cal hetero-molecular system CuPc/1 ML PTCDA/Ag(111) dynamical hetero-molecular interface CT can be confirmed. In the former system the molecule-metal interface in- teraction is found to dominate the physics of the system in RPES while in the latter system no hints for a significant hybridization at the CuPc-PTCDA interface can be revealed
Eingebettet in ein Konzept zum Aufbau eines Hochleistungs-Feldeffekt-Transistors auf der Basis organischer Halbleiter (OFET), werden in der vorliegenden Dissertation fundamentale Aspekte des Aufbaus und der Funktion organischer Halbleiter-Bauelemente erforscht. Die Kenntnis, welche maximale Leistungsfähigkeit organische Halbleiter in OFETs prinzipiell erreichen können, ist von elementarem Interesse, sowohl um Transportmodelle zu verfeinern, als auch um Mechanismen und Optimierungsansätze zu finden, mit denen OFETs generell verbessert werden können. Es wird das Ziel verfolgt, sich der maximalen Leistungsfähigkeit eines gegebenen Materialsystems anzunähern. Aufwendige Präparationsstrategien werden für dieses Ziel bewusst in Kauf genommen, auch wenn deshalb vermutlich kein direkter Zugang zu Anwendungen eröffnet wird. An geeigneten Modellsystemen können einzelne wichtige Aspekte, wie die elektronische Struktur an Metallkontakten und im organischen Halbleitervolumen sowie das Wachstum von Schichten und Kristalliten organischer Halbleitermoleküle auf einkristallinen Isolatorsubstraten charakterisiert werden. Die Ergebnisse dieser grundlegenden Experimente fließen in den Aufbau des geplanten OFETs ein. Auf dem Weg zu einem funktionsfähigen Bauelement mit bestmöglichen Eigenschaften wurden wesentliche Fortschritte erzielt. Der erste Schwerpunkt dieser Arbeit ist die Untersuchung elektronischer Niveaus an Metallkontakt-Grenzflächen und im Volumen des Modellsystems PTCDA/Ag(111) mit Zwei-Photonen-Photoelektronenspektroskopie (2PPE). Die 2PPE-Spektren der PTCDA/Ag(111)-Grenzfläche sind dominiert durch einen unbesetzten, parallel zur Grenzfläche stark dispersiven Shockley-artigen Grenzflächenzustand (IS), der sich durch die Chemisorption der Moleküle auf der Ag(111)-Oberfläche bildet. Bei der Untersuchung von intramolekular angeregten elektronischen Zuständen von PTCDA mit 2PPE zeigen sich im Vergleich zum Untergrund der Spektren schwache Signale, die jedoch mit einer geeigneten Beschreibung des Untergrunds davon separiert werden können. Besonders interessant ist in diesem Zusammenhang das LUMO, das bei einer Anregung aus dem HOMO eine um 0,4 eV stärkere energetische Absenkung zeigt, als bei der Anregung aus dem HOMO-1. Dies kann durch die unterschiedlichen exzitonischen Zustände, die bei den Anregungen entstehen, erklärt werden. Neben den metallischen Kontakten ist die Grenzfläche zwischen organischem Halbleiter und Gate-Isolator entscheidend für die Leistungsfähigkeit eines OFETs. Am Beispiel des Wachstums von Diindenoperylen-Molekülen (DIP) auf einkristallinen Al2O3-Substraten wurde die morphologische und strukturelle Ausbildung von organischen Halbleiterschichten mit optischer Mikroskopie und Rasterkraftmikroskopie untersucht. Das Wachstum kann als stark anisotrop charakterisiert werden. Die – im Vergleich zu den Bindungsenergien mit dem Substrat – deutlich größeren Bindungsenergien innerhalb der DIP-(001)-Kristallebenen führen bei Substrattemperaturen von 440 K zu einem Wachstum von aufrecht stehenden Molekülen. Es zeigt sich, dass die während des Wachstums herrschende Substrattemperatur einen entscheidenden Einfluss auf die Morphologie der DIP-Schicht hat. So nimmt die Inselgröße von etwa 200 nm bei 350 K auf über 700 nm bei 450 K zu. Außerdem wird ein Ansteigen der Filmrauheit, besonders ab etwa 430 K, beobachtet, das auf den Übergang zu einem anderen Wachstumsmodus bei diesen Temperaturen hinweist. Bei etwas höheren Temperaturen von etwa 460 K wird das Wachstum von DIP-Kristalliten beobachtet. Dabei können – abhängig von den gewählten Präparationsparametern – drei unterschiedliche Kristallit-Typen unterschieden werden: „Mesa-Kristallite“ mit lateralen Abmessungen von mehreren Mikrometern, „Dendritische Kristallite“, die eine verzweigte Struktur aufweisen, die mithilfe der Wachstumskinetik erklärt werden kann und „Schichtkristallite“, deren Morphologie sich durch teilweise starke Krümmungen auszeichnet. Insgesamt zeigt sich, dass die Morphologie kristalliner Strukturen durch eine feine Balance der Präparationsparameter Substrattemperatur, Aufdampfrate, Substratmorphologie und Substratreinheit bestimmt wird, so dass kleine Änderungen dieser Parameter zu deutlich unterschiedlichen Kristallitformen führen. Schließlich wird das Konzept zum Aufbau eines Hochleistungs-OFET vorgestellt und in Details weiterentwickelt. Fortschritte werden in erster Linie bei der Präparation der Gate-Elektrode erzielt, die unter dem Al2O3-Substrat angebracht werden soll. Für die Ausdünnung des Substrats wird eine Bohrtechnik weiterentwickelt und mit einer nasschemischen Ätzmethode kombiniert, so dass Isolatorstärken von unter 10 µm erreicht werden können. Erste wenige OFETs wurden auf der Basis dieses Substrats präpariert, allerdings ohne dass die Bauteile Feldeffekte zeigten. Verbesserungsmöglichkeiten werden diskutiert.
The present thesis is concerned with the impact of alkali metal-doping on the electronic structure of semiconducting organic thin films. The organic molecular systems which have been studied are the polycyclic aromatic hydrocarbons picene, pentacene, and coronene. Motivated by reports about exceptional behavior like superconductivity and electronic correlations of their alkali metal-doped compounds, high quality films fabricated from the above named molecules have been studied. The electronic structure of the pristine materials and their doped compounds has been investigated using photoelectron spectroscopy. Core level and valence band studies of undoped films yield excellent photoemission spectra agreeing with or even outperforming previously reported data from the literature. Alkali metal-doping manifests itself in a uniform manner in the electronic structure for all probed samples: Opposed to reports from the literature about metallicity and even superconductivity in alkali metal-doped picene, pentacene, and coronene, all films exhibit insulating nature with an energy gap of the order of one electron-volt. Remarkably, this is independent of the doping concentration and the type of dopant, i.e., potassium, cesium, or sodium. Based on the interplay between narrow bandwidths in organic semiconductors and sufficiently high on-molecule Coulomb repulsion, the non-metallicity is attributed to the strong influence of electronic correlations leading to the formation of a Mott insulator. In the case of picene, this is consolidated by calculations using a combination of density functional theory and dynamical mean-field theory. Beyond the extensive considerations regarding electronic correlations, further intriguing aspects have been observed. The deposition of thin picene films leads to the formation of a non-equilibrium situation between substrate and film surface. Here, the establishment of a homogeneous chemical potential is hampered due to the only weak van der Waals-interactions between the molecular layers in the films. Consequently, spectral weight is measurable above the reference chemical potential in photoemission. Furthermore, it has been found that the acceptance of additional electrons in pentacene is limited. While picene and coronene are able to host up to three extra electrons, in pentacene the limit is already reached for one electron. Finally, further extrinsic effects, coming along with alkali metal-doping, have been scrutinized. The oxidation of potassium atoms induced by the reaction with molecular oxygen in the residual gas of the ultra-high vacuum system turned out to significantly influence the electronic structure of alkali metal-doped picene and coronene. Moreover, also the applied X-ray and UV irradiation caused a certain impact on the photoemission spectra. Surprisingly, both effects did not play a role in the studies of potassium-doped pentacene.
Realization and Spectroscopy of the Quantum Spin Hall Insulator Bismuthene on Silicon Carbide
(2022)
Topological matter is one of the most vibrant research fields of contemporary solid state physics since the theoretical prediction of the quantum spin Hall effect in graphene in 2005. Quantum spin Hall insulators possess a vanishing bulk conductivity but symmetry-protected, helical edge states that give rise to dissipationless charge transport.
The experimental verification of this exotic state of matter in 2007 lead to a boost of research activity in this field, inspired by possible ground-breaking future applications.
However, the use of the quantum spin Hall materials available to date is limited to cryogenic temperatures owing to their comparably small bulk band gaps.
In this thesis, we follow a novel approach to realize a quantum spin Hall material with a large energy gap and epitaxially grow bismuthene, i.e., Bi atoms adopting a honeycomb lattice, in a \((\sqrt{3}\times\sqrt{3})\) reconstruction on the semiconductor SiC(0001). In this way, we profit both from the honeycomb symmetry as well as the large spin-orbit coupling of Bi, which, in combination, give rise to a topologically non-trivial band gap on the order of one electronvolt.
An in-depth theoretical analysis demonstrates that the covalent bond between the Si and Bi atoms is not only stabilizing the Bi film but is pivotal to attain the quantum spin Hall phase.
The preparation of high-quality, unreconstructed SiC(0001) substrates sets the basis for the formation of bismuthene and requires an extensive procedure in ultra-pure dry H\(_2\) gas. Scanning tunneling microscopy measurements unveil the (\(1\times1\)) surface periodicity and smooth terrace planes, which are suitable for the growth of single Bi layers by means of molecular beam epitaxy. The chemical configuration of the resulting Bi film and its oxidation upon exposure to ambient atmosphere are inspected with X-ray photoelectron spectroscopy.
Angle-resolved photoelectron spectroscopy reveals the excellent agreement of probed and calculated band structure. In particular, it evidences a characteristic Rashba-splitting of the valence bands at the K point. Scanning tunneling spectroscopy probes signatures of this splitting, as well, and allows to determine the full band gap with a magnitude of \(E_\text{gap}\approx0.8\,\text{eV}\).
Constant-current images and local-density-of-state maps confirm the presence of a planar honeycomb lattice, which forms several domains due to different, yet equivalent, nucleation sites of the (\(\sqrt{3}\times\sqrt{3}\))-Bi reconstruction.
Differential conductivity measurements demonstrate that bismuthene edge states evolve at atomic steps of the SiC substrate. The probed, metallic local density of states is in agreement with the density of states expected from the edge state's energy dispersion found in density functional theory calculations - besides a pronounced dip at the Fermi level.
By means of temperature- and energy-dependent tunneling spectroscopy it is shown that the spectral properties of this suppressed density of states are successfully captured in the framework of the Tomonaga-Luttinger liquid theory and most likely originate from enhanced electronic correlations in the edge channel.
The present thesis is concerned with molecular beam epitaxy of magnetite (Fe3O4) thin films on semiconducting substrates and the characterization of their structural, chemical, electronic, and magnetic properties. Magnetite films could successfully be grown on ZnO substrates with high structural quality and atomically abrupt interfaces. The films are structurally almost completely relaxed exhibiting nearly the same in-plane and out-of-plane lattice constants as in the bulk material. Films are phase-pure and show only small deviations from the ideal stoichiometry at the surface and in some cases at the interface. Growth proceeds via wetting layer plus island mode and results in a domain structure of the films. Upon coalescence of growing islands twin-boundaries (rotational twinning) and anti-phase boundaries are formed. The overall magnetization is nearly bulk-like, but shows a slower approach to saturation, which can be ascribed to the reduced magnetization at anti-phase boundaries. However, the surface magnetization which was probed by x-ray magnetic circular dichroism was significantly decreased and is ascribed to a magnetically inactive layer at the surface. Such a reduced surface magnetization was also observed for films grown on InAs and GaAs. Magnetite could also be grown with nearly ideal iron-oxygen stoichiometry on InAs substrates. However, interfacial reactions of InAs with oxygen occur and result in arsenic oxides and indium enrichment. The grown films are of polycrystalline nature. For the fabrication of Fe3O4/GaAs films, a postoxidation of epitaxial Fe films on GaAs was applied. Growth proceeds by a transformation of the topmost Fe layers into magnetite. Depending on specific growth conditions, an Fe layer of different thickness remains at the interface. The structural properties are improved in comparison with films on InAs, and the resulting films are well oriented along [001] in growth direction. The magnetic properties are influenced by the presence of the Fe interface layer as well. The saturation magnetization is increased and the approach to saturation is faster than for films on the other substrates. We argue that this is connected to a decreased density of anti-phase boundaries because of the special growth method. Interface phases, viz. arsenic and gallium oxides, are quantified and different growth conditions are compared with respect to the interface composition.
Im Rahmen dieser Arbeit wurden mit Hilfe von hochaufgelöster ARPES die Auswirkungen verschiedener intrinsischer und extrinsischer Einflüsse auf zweidimensionale elektronische Zustände untersucht: Eine Änderung der Morphologie aufgrund einer (2 × 1)-Rekonstruktion bewirkt beim OFZ von Au(110) im Vergleich zur nicht-rekonstruierten Oberfläche eine Verschiebung der Bindungsenergie von ca. 700meV. Dieses Verhalten wurde in LDA-slab-layer-Rechungen reproduziert und durch gezielte Modifikation der Oberflächenstruktur sowie kontrollierte Beeinflussung des OFZ durch die Adsorbate Ag, Na und Au verstanden. Eine Linienbreitenanalyse der sehr scharfen Minoritäts-QWS in dünnen Fe- Filmen auf W(110) ermöglichte eine Abschätzung der Elektron-Elektron- Wechselwirkung und eine Bestimmung der Elektron-Phonon-Kopplungskonstanten. Die starke Anisotropie der Dispersion der QWS ist des weiteren durch den Vergleich mit GGA-slab-layer-Rechnungen als intrinsische Eigenschaft dieser Zustände identifiziert worden. Mit Hilfe eines erweiterten PAM wurde zudem die k⊥-Dispersion des, den QWS zugrunde liegenden Volumenbandes, bestimmt. Die spinabhängigen Einflussfaktoren Spin-Orbit- und Austausch-Wechselwirkung sowie deren Kombination wurden am Beispiel des OFZ von dünnen Au-Filmen auf Ni(111), sowie an QWS in dünnen Ni-Filmen auf W(110) untersucht. Die in SPR-KKR-Photoemissionrechungen gefundene leichte Asymmetrie der spinaufgelösten Dispersion wurde in den spinintegrierten ARPESMessungen nicht beobachtet. Ab 9ML Au-Bedeckung konnte die Rashba- Aufspaltung des OFZ aufgelöst werden. Eine durch das W(110)-Substrat induzierte Rashba-Aufspaltung wurde bei sp-artigen QWS in dünnen Ni- Filmen beobachtet, welche jedoch mit weiteren Strukturen hybridisieren, was eine eindeutige Aussage über die tatsächliche Natur der Aufspaltung erschwert.